Инд. авторы: Goryainov S.V., Krylov A.S., Vtyurin A.N., Likhacheva A.Y., Prasad P.S.R.
Заглавие: In situ Raman study of wairakite and dawsonite interaction with water at high P–T parameters
Библ. ссылка: Goryainov S.V., Krylov A.S., Vtyurin A.N., Likhacheva A.Y., Prasad P.S.R. In situ Raman study of wairakite and dawsonite interaction with water at high P–T parameters // Bulletin of the Russian Academy of Sciences: Physics. - 2016. - Vol.80. - Iss. 5. - P.522-524. - ISSN 1062-8738. - EISSN 1934-9432.
Внешние системы: DOI: 10.3103/S1062873816050087; РИНЦ: 27139988; SCOPUS: 2-s2.0-84975806556;
Реферат: eng: The behavior of wairakite CaAl2Si4O12 · 2H2O and dawsonite NaAlCO3(OH)2 in a water medium is studied by means of in situ Raman spectroscopy at the simultaneously high temperatures and pressures (up to T = 723 K and P = 1 GPa). After the initial minerals are partially dissolved, phillipsite forms in the wairakite–water system, and a glass-like phase is generated in the dawsonite–water system. These minerals show no signs of overhydration. The amorphization of the wairakite structure that occurs at high temperatures and pressures was reversible. © 2016, Allerton Press, Inc.
Ключевые слова: Zeolites; Water system; Water mediums; T parameter; Situ Raman; In-situ Raman spectroscopy; High temperature; Glass-like phase; Waterworks; Phillipsite;
Издано: 2016
Физ. характеристика: с.522-524
Цитирование: 1. Pawley, A.R., Chinnery, N.J., Clark, S.M., and Walter, M.J., Contrib. Mineral. Petrol., 2011, vol. 162, p. 1279. 2. Rashchenko, S.V., Likhacheva, A.Yu., Chanyshev, A.D., and Ancharov, A.I., J. Struct. Chem., 2012, vol. 53, p. S43. 3. Goryainov, S.V., Fursenko, B.A., and Belitskii, I.A., Dokl. Phys. Chem., 1999, vol. 369, p. 307. 4. Von der Gönna, J., Nover, G., and Lathe, C., Proc. EGU General Assembly, 2013, vol. 15, p. EGU20139391. 5. Goryainov, S.V., Eur. J. Mineral., 2005, vol. 17, no. 2, p. 201. 6. Hazen, R.M., Science, 1988, vol. 219, p. 1065. 7. Moroz, N.K., Kholopov, E.V., Belitsky, I.A., and Fursenko, B.A., Microporous Mesoporous Mater., 2001, vol. 42, p. 113. 8. Goryainov, S.V., Krylov, A.S., Likhacheva, A.Yu., and Vtyurin, A.N., Bull. Russ. Acad. Sci.: Phys., 2012, vol. 76, no. 7, p. 804. 9. Likhacheva, A.Yu., et al., J. Raman Spectrosc., 2012, vol. 43, p. 559. 10. Goryainov, S.V., Krylov, A.S., and Vtyurin, A.N., Bull. Russ. Acad. Sci.: Phys., 2013, vol. 77, no. 3, p. 313. 11. Goryainov, S.V., Secco, R.A., Huang, Y., and Likhacheva, A.Y., Microporous Mesoporous Mater., 2013, vol. 171, p. 125. 12. Goryainov, S.V., Krylov, A.S., Vtyurin, A.N., and Pan, Yu., Bull. Russ. Acad. Sci.: Phys., 2015, vol. 79, no. 6, p. 794. 13. Bowers, T.S. and Burns, R.G., Am. Mineral., 1990, vol. 75, p. 601. 14. Surovtsev, N.V. and Kupriyanov, I.N., J. Raman Spectrosc., 2015, vol. 46, p. 171.